Dapeng Zhang , Xiaolong Zhou , Chenxi Zhao , Shuwei Han , Xianzheng Guo , Haosheng Chen , Wenzhao Wang , Wencan Zhang , Mingzheng Chang , Qingliang Ma , Yunhao You , Mingshan Liu , Xinyu Liu , Zhijian Wei , Xiaohong Kong , Shiqing Feng
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引用次数: 0
Abstract
Neuronal loss following spinal cord injury (SCI) remains a significant barrier to the recovery of neural function. Neural stem cells (NSCs) supplementation offers a promising therapeutic avenue by providing seed cells; however, the differentiation rate of NSCs into neurons is often suboptimal. In this study, lithium was immobilized on the surface of ZnO nanoparticles using a polydopamine coating to synthesize Li-PDA@ZnO nanoparticles. These nanoparticles were designed to induce NSC differentiation into neurons in a spatiotemporal-controlled manner using ultrasound-driven stimulation. Additionally, a biohydrogel system consisting of genipin and collagen was developed to encapsulate NSCs preloaded with endocytosed nanoparticles. The application of ultrasound stimulation to ZnO nanoparticles enhanced the differentiation of NSCs into neurons in a concentration-dependent manner following endocytosis. Li-PDA@ZnO nanoparticles demonstrated improved biocompatibility and further promoted neuronal differentiation, a process mediated by molecular pathways involving ERK and ASCL1. In vivo, the ability of ultrasound-driven nanoparticles to enhance NSC differentiation was validated using a mouse SCI contusion model. Furthermore, the combined nanoparticle-biohydrogel system was evaluated in an SCI transection model, where it was found to reduce local inflammation, enhance neuronal differentiation of NSCs, and increase the proportion of functional neurons. These effects contributed to significant improvements in motor, sensory, and autonomic function recovery following SCI. In summary, spatiotemporal-controlled ultrasound-driven Li-PDA@ZnO nanoparticles effectively enhance the differentiation of NSCs into neurons and, when incorporated into hydrogel systems, represent a novel therapeutic approach for spinal cord injury repair.
Bioactive MaterialsBiochemistry, Genetics and Molecular Biology-Biotechnology
CiteScore
28.00
自引率
6.30%
发文量
436
审稿时长
20 days
期刊介绍:
Bioactive Materials is a peer-reviewed research publication that focuses on advancements in bioactive materials. The journal accepts research papers, reviews, and rapid communications in the field of next-generation biomaterials that interact with cells, tissues, and organs in various living organisms.
The primary goal of Bioactive Materials is to promote the science and engineering of biomaterials that exhibit adaptiveness to the biological environment. These materials are specifically designed to stimulate or direct appropriate cell and tissue responses or regulate interactions with microorganisms.
The journal covers a wide range of bioactive materials, including those that are engineered or designed in terms of their physical form (e.g. particulate, fiber), topology (e.g. porosity, surface roughness), or dimensions (ranging from macro to nano-scales). Contributions are sought from the following categories of bioactive materials:
Bioactive metals and alloys
Bioactive inorganics: ceramics, glasses, and carbon-based materials
Bioactive polymers and gels
Bioactive materials derived from natural sources
Bioactive composites
These materials find applications in human and veterinary medicine, such as implants, tissue engineering scaffolds, cell/drug/gene carriers, as well as imaging and sensing devices.